US11213840B2 - Mixer design for a plural component system - Google Patents

Mixer design for a plural component system Download PDF

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Publication number
US11213840B2
US11213840B2 US15/963,390 US201815963390A US11213840B2 US 11213840 B2 US11213840 B2 US 11213840B2 US 201815963390 A US201815963390 A US 201815963390A US 11213840 B2 US11213840 B2 US 11213840B2
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Prior art keywords
mixer
mixing chamber
component
centerline
fluid
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US20180353982A1 (en
Inventor
Austin W. Owens
Justin T. Steffl
Adam S. Troness
Mitchell S. Kelley
David A. Cook
Jeffrey S. Jerdee
Jeshwanth D S Kundem
Shawn C. Johnson
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Wagner Spray Technology Corp
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Wagner Spray Technology Corp
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Priority to US15/963,390 priority Critical patent/US11213840B2/en
Priority to CN201880028989.3A priority patent/CN110603107B/en
Priority to EP18794272.7A priority patent/EP3618969A4/en
Priority to PCT/US2018/030130 priority patent/WO2018204231A1/en
Assigned to WAGNER SPRAY TECH CORPORATION reassignment WAGNER SPRAY TECH CORPORATION ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: OWENS, AUSTIN W., Steffl, Justin T., Troness, Adam S., COOK, DAVID A., JERDEE, JEFFREY S., JOHNSON, SHAWN C., Kundem, Jeshwanth DS, Kelley, Mitchell S.
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    • BPERFORMING OPERATIONS; TRANSPORTING
    • B05SPRAYING OR ATOMISING IN GENERAL; APPLYING FLUENT MATERIALS TO SURFACES, IN GENERAL
    • B05BSPRAYING APPARATUS; ATOMISING APPARATUS; NOZZLES
    • B05B7/00Spraying apparatus for discharge of liquids or other fluent materials from two or more sources, e.g. of liquid and air, of powder and gas
    • B05B7/02Spray pistols; Apparatus for discharge
    • B05B7/12Spray pistols; Apparatus for discharge designed to control volume of flow, e.g. with adjustable passages
    • B05B7/1209Spray pistols; Apparatus for discharge designed to control volume of flow, e.g. with adjustable passages the controlling means for each liquid or other fluent material being manual and interdependent
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B05SPRAYING OR ATOMISING IN GENERAL; APPLYING FLUENT MATERIALS TO SURFACES, IN GENERAL
    • B05BSPRAYING APPARATUS; ATOMISING APPARATUS; NOZZLES
    • B05B7/00Spraying apparatus for discharge of liquids or other fluent materials from two or more sources, e.g. of liquid and air, of powder and gas
    • B05B7/02Spray pistols; Apparatus for discharge
    • B05B7/04Spray pistols; Apparatus for discharge with arrangements for mixing liquids or other fluent materials before discharge
    • B05B7/0408Spray pistols; Apparatus for discharge with arrangements for mixing liquids or other fluent materials before discharge with arrangements for mixing two or more liquids
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01FMIXING, e.g. DISSOLVING, EMULSIFYING OR DISPERSING
    • B01F23/00Mixing according to the phases to be mixed, e.g. dispersing or emulsifying
    • B01F23/40Mixing liquids with liquids; Emulsifying
    • B01F23/45Mixing liquids with liquids; Emulsifying using flow mixing
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01FMIXING, e.g. DISSOLVING, EMULSIFYING OR DISPERSING
    • B01F25/00Flow mixers; Mixers for falling materials, e.g. solid particles
    • B01F25/10Mixing by creating a vortex flow, e.g. by tangential introduction of flow components
    • B01F25/102Mixing by creating a vortex flow, e.g. by tangential introduction of flow components wherein the vortex is created by two or more jets introduced tangentially in separate mixing chambers or consecutively in the same mixing chamber
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01FMIXING, e.g. DISSOLVING, EMULSIFYING OR DISPERSING
    • B01F25/00Flow mixers; Mixers for falling materials, e.g. solid particles
    • B01F25/30Injector mixers
    • B01F25/31Injector mixers in conduits or tubes through which the main component flows
    • B01F25/314Injector mixers in conduits or tubes through which the main component flows wherein additional components are introduced at the circumference of the conduit
    • B01F25/3142Injector mixers in conduits or tubes through which the main component flows wherein additional components are introduced at the circumference of the conduit the conduit having a plurality of openings in the axial direction or in the circumferential direction
    • B01F3/0861
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01FMIXING, e.g. DISSOLVING, EMULSIFYING OR DISPERSING
    • B01F33/00Other mixers; Mixing plants; Combinations of mixers
    • B01F33/50Movable or transportable mixing devices or plants
    • B01F33/501Movable mixing devices, i.e. readily shifted or displaced from one place to another, e.g. portable during use
    • B01F33/5011Movable mixing devices, i.e. readily shifted or displaced from one place to another, e.g. portable during use portable during use, e.g. hand-held
    • B01F33/50114Movable mixing devices, i.e. readily shifted or displaced from one place to another, e.g. portable during use portable during use, e.g. hand-held of the hand-held gun type
    • B01F5/0475

Definitions

  • Plural component systems mix two or more fluids and apply the mixture to an application site.
  • Plural component systems are often used to spray two components that, when mixed, react and cure on a surface.
  • One particular usage for plural component systems is to generate a foam through the reaction of an A component and a B component that, when sprayed, react and cure quickly. Proper foam generation requires sufficient fluid delivery, sufficient chemical mixing, and sufficient fluid dispersal.
  • a plural component spray gun has three main components: a coupling block, a gun block, and a gun handle.
  • the coupling block facilitates the two plural components entering a mixer, for example through an A-chemical or and a B-chemical port.
  • the gun block includes filters, side seals, the mixer, and a fluid spray tip.
  • the gun handle includes an air purge supply, a trigger mechanism, and an attachment to the gun block.
  • a mixer for a plural component spray gun has a first fluid component inlet configured to introduce a first fluid component into the mixer.
  • the mixer also has a second fluid component inlet configured to introduce a second fluid component into the mixer.
  • the first and second fluid component inlets are offset with respect to a centerline of the mixer and positioned such that a first fluid flow from the first inlet is directed away from the second inlet, and a second fluid flow from the second inlet is directed away from the first inlet.
  • FIGS. 1A-1C are diagrammatic side elevation, front elevation and exploded perspective views, respectively of a plural component spray gun in which embodiments of the present invention are particularly useful.
  • FIG. 2 illustrates a diagrammatic view of a fluid being applied to a wall.
  • FIGS. 3A and 3B illustrate a known mixer design.
  • FIGS. 4A-4H illustrate a comparison between a mixer in accordance with an embodiment of the present invention, and the known mixer of FIGS. 3A and 3B .
  • FIGS. 5A-5F illustrate diagrammatic views of a mixer in accordance with an embodiment of the present invention.
  • FIGS. 6A-6C illustrate a mixer within a removable spray tip in accordance with an embodiment of the present invention.
  • FIGS. 7A-7C illustrate alternative mixer configurations in accordance with some embodiments of the present invention.
  • a plural component spray gun receives at least two fluids that are reactively combined within a mixer, and then dispensed.
  • the mixer receives each of the two fluids through a separate inlet.
  • the mixer facilitates mixing of the plural components from their respective inlets, and emits, through an outlet, a product which is then sprayed or otherwise provided at an outlet.
  • the mixer is responsible for effective mixing of the two components, for example a liquid component A and a liquid component B.
  • Components A and B when cured, can create a plurality of different materials, for example thermal insulation, protective coating, etc.
  • Fluid delivery is affected by flow rate control and filtering.
  • Chemical mixing is affected by reducing jetting and reducing back pressure.
  • Fluid dispersal is affected by spray pattern, which, in turn, can be affected by the tip geometry and/or size.
  • Some embodiments described herein utilize a spray tip with a cat-eye outlet. However, embodiments described herein may also be used with any other suitable outlet and/or internal geometry.
  • Components A and B are each pumped into a plural component spray gun mixer through two separate entry points in order to reduce the risk of a crossover event, e.g. component A backflowing into a fluid line for component B and reacting within the component B fluid line. Crossover events can result in a plural component gun becoming unusable.
  • Chemical mixing of components A and B can be improved by reducing jetting, and by reducing back pressure. Jetting can be reduced by modifying an orifice offset between entry points for components A and B. Back pressure can be reduced by modifying an orifice angle at which components A and B enter the mixer.
  • FIGS. 1A-1C illustrate plural component spray gun 100 in which embodiments of the present invention may be useful.
  • Spray gun 100 is configured to spray a mixed fluid through outlet 150 , when trigger 110 is actuated.
  • Fluid components enter spray gun 100 through inlets 102 and 104 (shown in FIG. 1B ).
  • component A may enter through inlet 102
  • component B may enter through inlet 104 .
  • FIG. 1C illustrates an exploded view of a plural component gun 100 illustrating a position of mixer 120 within spray gun 100 .
  • Mixer 120 received incoming components A and B from inlets 102 , 104 , respectively.
  • FIG. 2 illustrates a diagrammatic view of a fluid being applied to a surface.
  • the normal force exerted on the wall and flow rates can be derived using equations 1-3 presented below.
  • F n pAV 2 sin ⁇ (1)
  • Q 1 1/2 Q (1+cos ⁇ ) (2)
  • Q 2 1/2 Q (1 ⁇ cos ⁇ ) (3)
  • F n is normal force 230
  • volumetric flow rates Q, Q1, and Q2 correspond, respectively, to flow rates 212 , 232 , and 234 .
  • A is the area of the nozzle
  • V is the velocity at the nozzle outlet
  • is angle 222 of inclined wall 220 , or the impingement angle.
  • Equation 1 it is determined that normal force 230 is maximum when the impingement angle 222 is 90°. Impinging the jet at an angle can decrease the normal force acting on the wall, which in turn, decreases the force.
  • Flow rates 232 and 234 are also dependent on angle 222 . In a scenario where angle 222 is not equal to 90°, the fluid has a higher tendency to move in a first direction as opposed to a second direction, for example, flow rate 232 is greater than flow rate 234 .
  • a 90° impingement angle for an incoming component A, with respect to the inlet for component B may result in a higher back pressure, which may distribute the flow equally on both sides of a mixer.
  • Such an equal distribution can present a disadvantage as there is only one outlet for most mixer designs. Fluid particles are diverted opposite in direction to the outlet, which restrict flow coming into the mixer. In turn, this requires more pressure to reverse the flow back towards the outlet. Since the mix chamber walls are curved, the fluid particles may have a tendency to move axially without bouncing back toward the inlet, as compared to a vertical wall.
  • the fluid particles from liquid components A and B come to a complete rest when impinging on each other in the vicinity of their intersection within the mixer.
  • the fluid particles may then have to be accelerated to gain axial velocity along the mixer, which affects the pressure required.
  • Having a higher offset between inlets would decrease the impingement of the fluid components on each other, such that the pressure is solely through impingement off the chamber wall.
  • having the flows of liquid components A and B impinging at each other does ensure efficient mixing.
  • FIGS. 3A and 3B illustrate a known mixer design.
  • FIG. 3A illustrates a mixer available from Polyurethane Machinery Corporation, headquartered in Lakewood, N.J. (hereinafter referred to as “the PMC chamber”).
  • the PMC chamber illustrated in FIG. 3A is a standard 00 mix chamber and 00 tip configured to combine liquid components A and B in mixer 300 using two inlet apertures 310 and 320 arranged to have an offset of 0.010 inches from their respective centerlines (as illustrated in FIG. 3A ).
  • a portion of liquid component A impinges on the wall of mixer 300 while the rest impinges on liquid component B.
  • Liquid component B behaves similarly.
  • FIG. 3B illustrates a diagrammatic cross sectional view 350 of mixer 300 , illustrating the overlap 330 between caused by offset centerlines between inlets 310 and 320 .
  • a functional spray pattern must be maintained by the spray gun during operation.
  • the mixer will also be compatible with existing plural component spray gun technology, with minimal or no retrofitting. It is also desired to maintain or increase the flow rate of fluid through the mixer.
  • At least some embodiments herein increase the robustness of current mixer designs and make the designs more resistant to crossover, which can be caused by pressure imbalances between the two fluid entering the mixer.
  • At least some embodiments described herein change the angle of one or both fluid component inlets, with respect to the mixer from directly perpendicular to the side walls of the mixer to an angle towards the outlet.
  • the angle is about 10°.
  • Embodiments described herein may also increase the separation between the mixer inlets of the two fluid components. These changes can reduce back pressure on the inlet orifices, reduce jetting of the fluids into the opposite side orifice, and facilitate proper mixing of the chemicals within the mixer under all potential pressure differential conditions.
  • FIGS. 4A-4H illustrate a comparison between a mixer in accordance with an embodiment of the present invention, and the mixer of FIGS. 3A and 3B .
  • Mixer 400 illustrated in FIG. 4A , includes a mixer body that receives a first fluid inlet 410 , and a second fluid inlet 420 .
  • fluid component inlets 410 and 420 are each angled at an orifice angle 412 and 422 , respectively.
  • orifice angles 412 and 422 are about 10°.
  • embodiments can be practiced with other angles, such as 5° to 20°.
  • the positioning of inlets 410 and 420 differs with respect to previous designs.
  • an angled orifice results in a lager axial (i.e. in the direction of the outlet) component of the fluid velocity when the two fluids components enter mixing chamber 400 through inlets 410 and 420 .
  • voracity, or fluid rotation is introduced, which improves the ability of the two fluids to mix and react.
  • Angling orifices 410 , 420 toward the outlet means that, as the fluid rotates in mixing chamber 400 , there is less of an opportunity for it to circulate over to the opposing orifice and create a small recirculation zone that could be a trigger point for crossover in the event of a pressure loss on one side.
  • Orifice location is an important consideration for a crossover resistant design, in that inlet orifices 410 , 420 should be offset from the centerline of the mixing chamber.
  • each orifice is offset by 0.010 inches from the mix chamber center line, resulting in a total offset distance of 0.020 inches between the entry plane of the inlets. Since the inlet diameter of mixer 300 is 0.032 inches, each orifice can see a small section of the other orifice, which results in fluid jetting from one side to the other, as well as recirculation in the inlet region of each orifice.
  • the offset of inlet orifices 410 , 420 is increased to 0.040 inches from the center line, or 0.080 inches total offset, and the inner diameter of mixer 400 is increased to allow for greater offset.
  • FIG. 4B is a computational fluid flow pressure diagram illustrating pressure contours experienced along a surface of mixer 400 , in fluid flow direction 430 .
  • the pressure contours of FIG. 4B were obtained using water as a medium flowing through inlets 410 and 420 .
  • the flow rates on both inlets was kept constant at 0.6 gallons/minute (GPM).
  • FIG. 4C shows a similar pressure contour using mixer 300 , shown in FIGS. 3A and 3B . As illustrated in the comparison between FIGS. 4B and 4C , the pressure drop experienced using mixer 400 is lower than that using mixer 300 , with the same maximum velocity experienced at 160 meters/second.
  • FIG. 4D illustrates velocity for mixer 300 .
  • almost zero velocity is experienced at the intersection of fluid jets 415 and 425 .
  • fluid particles are directed away from the outlet and are bounced back.
  • the force from these particles combined with the inlet fluid pressure impinging on the circular wall, creates a whirling motion, as illustrated in FIG. 4E .
  • liquid components A and B are inserted into a circular space tangentially, as illustrated in FIGS. 4F and 4G , they create an overall rotational motion.
  • the swirling motion dissipates as the fluid flows along the length of mix chamber 400 . This behavior is caused by a lower pressure region along axis 430 .
  • FIG. 4G plots the vorticity contour for mixer 400 , quantifying the decrease in rotational motion along length 430 of mixer 400 .
  • Additional simulations were also conducted using polymeric fluids.
  • A-isocyanate and B-polyol were used.
  • the two components entered mixers 300 and 400 at a temperature greater than room temperature.
  • the dynamic viscosity was consequently measured using a rotary viscometer.
  • the dynamic viscosity values were found to be A—0.045 Pa ⁇ s and B—0.145 Pa ⁇ s when A dispersed at 120 ⁇ 3° F. and B at 130° ⁇ 30° F.
  • CFD simulations quantified the differential pressure between the inlets.
  • mixer 400 Using mixer 400 , a pressure differential of 950 PSI was observed, while mixer 300 only reached a differential of 575 PSI.
  • the larger pressure differential allows for mixer 400 to avoid crossover due to user error and/or pump malfunction.
  • Flow rates were also calculated through the simulations with set pressures at the inlets.
  • Mixer 400 experienced 0.147 pounds/second while mixer 300 experienced 0.108 pounds/second.
  • mixers 300 and 400 Experimental testing was also conducted between mixers 300 and 400 .
  • gun pressures were compared for each design, using different fluids.
  • the gun pressure for mixer 400 was 260 PSI greater than that of mixer 300 .
  • the gun pressure was 200 PSI.
  • mixer 400 has a lower back pressure when compared to mixer 300 . The lower back pressure allows for a higher flow rate a set pump pressure. This validated the simulated, higher flow rate obtained using the CFD analysis discussed above.
  • Tests were also conducted to intentionally cause crossover between liquid components for both mixers 300 and 400 .
  • the results are illustrated in FIG. 4H as pressure differential values with the spray gun between components A and B for different B to A ratios.
  • Mixer 400 was able to achieve a pressure differential of 841 PSI, while mixer 300 (illustrated in FIGS. 4A-4H as mixer 402 ) maxed out at 384 PSI.
  • the spray pattern and spray atomization has improved when compared to mixer 300 for at least some embodiments.
  • the spray pattern has widened in relation to that obtained using mixer 300 .
  • mixer 400 is configured to be installed within similar spray gun configurations.
  • mixer 400 An additional benefit of mixer 400 is the increased mass flow rate achieved.
  • Mixer 400 was tested using the same inlet size and spray nozzle. CFD results showed that the new design out-performed the current design by 28% with regard to mass flow rate. Higher flow rates allow operators to complete jobs faster, saving operators time and money on each job, and allowing operators to complete more jobs with the same equipment.
  • Mixer 400 and similar embodiments discussed herein, can accomplish this while, maintaining foam density standards and quality.
  • FIGS. 5A-5F illustrate diagrammatic views of a mixer in accordance with an embodiment of the present invention.
  • Mixer 500 is configured to be used in a plural component spray gun.
  • FIG. 5D illustrates a view taken along the cross-section of line A-A, illustrated in FIG. 5A .
  • FIG. 5E illustrates a cross-section of the spray gun taken along line B-B, shown in FIG. 5B .
  • FIG. 5F illustrates a cross-sectional view of the mixer 500 taken along section C-C, shown in FIG. 5C .
  • Mixer 500 is configured to receive two components at inlets on opposing sides of the mixer, as illustrated in FIGS. 5E and 5F . Inlets comprise an offset distance 510 , with an orifice angle 512 .
  • both component A and B experience the same offset angle 512 and inlet offset distance 510 .
  • Mixer 500 has a chamber diameter of 502 , of about 0.113 inches, which may allow for a higher volumetric flow rate when compared to previous designs.
  • FIGS. 6A-6C illustrate a mixer within a removable spray tip in accordance with an embodiment of the present invention.
  • a mixer is typically located within a spray gun.
  • the spray gun In the event crossover occurs, the spray gun must be completely disassembled in order to remove the mixer and address the damage from the crossover event. Additionally, in the event the spray gun is to be used for a different operation, which can require a different mixer configuration, the spray gun must be disassembled and reassembled with the desired mixer configuration between uses. It is desired for a mixer to be more easily removed and replaced from a spray gun design.
  • Spray tip 600 is configured to be inserted within a spray gun, such as spray gun 100 , such that fluid flows through the spray tip prior to exiting outlet 150 .
  • FIG. 6B illustrates a cross-sectional view of spray tip 600 taken along line A-A illustrated in FIG. 6A .
  • the mixer is incorporated into spray tip 600 , such that a first liquid component enters through inlet 602 at an inlet offset (not shown), and offset angle 612 , while a second component enters through inlet 604 , at an inlet offset (not shown) and offset angle 614 .
  • the offsets for inlets 602 and 604 may be the same or different.
  • Angles 612 and 614 may be the same or different.
  • the inlet offset is 0.010 inches, and inlet angles 612 and 614 are each 20° with respect to a centerline of the mixer.
  • the offset angle 612 and/or 614 may have a magnitude greater than 20°, for example 21°, 22°, 23°, 24°, 25°, 26°, 27°, or 28°.
  • the inlet offset for 602 and 604 has been described as 0.010, it could also be smaller, for example 0.005 inches, or 0.006 inches, or 0.007 inches, or 0.008 inches, or 0.009 inches.
  • FIG. 6C illustrates volumetric flow through spray tip 600 along flow path 630 to an outlet. As illustrated, complete mixing is achieved between components A and B, along mixer 630 with minimal risk of crossover.
  • FIGS. 7A-7C illustrate alternative mixer configurations in accordance with some embodiments of the present invention.
  • a mixer 700 comprises an inlet 702 and an inlet 704 configured to allow components to enter a mix chamber 700 and exit through outlet 706 .
  • FIG. 7B illustrates an alternative mix chamber design with mix chamber design 710 with inlets 712 and 714 and outlet 716 .
  • FIG. 7C illustrates a mix chamber 720 with as first inlet 722 , a second inlet 724 , and an outlet 726 .

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  • Chemical & Material Sciences (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • Nozzles (AREA)

Abstract

A mixer for a plural component spray gun is presented. The mixer has a mixer body comprising a mixing chamber with an outlet. The mixer also has a first fluid component inlet, coupled to a first fluid conduit, configured to introduce a first fluid component into the mixing chamber. The mixer also has a second fluid component inlet, coupled to a second fluid conduit, configured to introduce a second fluid component into the mixing chamber. The first and second fluid component inlets are offset with respect to a centerline of the mixing chamber and positioned such that a first fluid flow from the first inlet is directed toward the outlet, and a second fluid flow from the second inlet is directed toward the outlet.

Description

CROSS-REFERENCE OF RELATED APPLICATIONS
The present application is based on and claims the benefit of U.S. Provisional Patent Application Ser. No. 62,492,669 filed May 1, 2017, the content of which application is hereby incorporated by reference in its entirety.
BACKGROUND
Plural component systems mix two or more fluids and apply the mixture to an application site. Plural component systems are often used to spray two components that, when mixed, react and cure on a surface. One particular usage for plural component systems is to generate a foam through the reaction of an A component and a B component that, when sprayed, react and cure quickly. Proper foam generation requires sufficient fluid delivery, sufficient chemical mixing, and sufficient fluid dispersal.
A plural component spray gun has three main components: a coupling block, a gun block, and a gun handle. The coupling block facilitates the two plural components entering a mixer, for example through an A-chemical or and a B-chemical port. The gun block includes filters, side seals, the mixer, and a fluid spray tip. The gun handle includes an air purge supply, a trigger mechanism, and an attachment to the gun block.
SUMMARY
A mixer for a plural component spray gun is presented. The mixer has a first fluid component inlet configured to introduce a first fluid component into the mixer. The mixer also has a second fluid component inlet configured to introduce a second fluid component into the mixer. The first and second fluid component inlets are offset with respect to a centerline of the mixer and positioned such that a first fluid flow from the first inlet is directed away from the second inlet, and a second fluid flow from the second inlet is directed away from the first inlet.
BRIEF DESCRIPTION OF THE DRAWINGS
FIGS. 1A-1C are diagrammatic side elevation, front elevation and exploded perspective views, respectively of a plural component spray gun in which embodiments of the present invention are particularly useful.
FIG. 2 illustrates a diagrammatic view of a fluid being applied to a wall.
FIGS. 3A and 3B illustrate a known mixer design.
FIGS. 4A-4H illustrate a comparison between a mixer in accordance with an embodiment of the present invention, and the known mixer of FIGS. 3A and 3B.
FIGS. 5A-5F illustrate diagrammatic views of a mixer in accordance with an embodiment of the present invention.
FIGS. 6A-6C illustrate a mixer within a removable spray tip in accordance with an embodiment of the present invention.
FIGS. 7A-7C illustrate alternative mixer configurations in accordance with some embodiments of the present invention.
DETAILED DESCRIPTION OF ILLUSTRATIVE EMBODIMENTS
A plural component spray gun receives at least two fluids that are reactively combined within a mixer, and then dispensed. The mixer receives each of the two fluids through a separate inlet. The mixer facilitates mixing of the plural components from their respective inlets, and emits, through an outlet, a product which is then sprayed or otherwise provided at an outlet. The mixer is responsible for effective mixing of the two components, for example a liquid component A and a liquid component B. Components A and B, when cured, can create a plurality of different materials, for example thermal insulation, protective coating, etc.
Some important process variables for plural component mixing and spraying are fluid delivery, fluid dispersal and chemical mixing. Fluid delivery is affected by flow rate control and filtering. Chemical mixing is affected by reducing jetting and reducing back pressure. Fluid dispersal is affected by spray pattern, which, in turn, can be affected by the tip geometry and/or size. Some embodiments described herein utilize a spray tip with a cat-eye outlet. However, embodiments described herein may also be used with any other suitable outlet and/or internal geometry.
Components A and B are each pumped into a plural component spray gun mixer through two separate entry points in order to reduce the risk of a crossover event, e.g. component A backflowing into a fluid line for component B and reacting within the component B fluid line. Crossover events can result in a plural component gun becoming unusable. Chemical mixing of components A and B can be improved by reducing jetting, and by reducing back pressure. Jetting can be reduced by modifying an orifice offset between entry points for components A and B. Back pressure can be reduced by modifying an orifice angle at which components A and B enter the mixer.
FIGS. 1A-1C illustrate plural component spray gun 100 in which embodiments of the present invention may be useful. Spray gun 100 is configured to spray a mixed fluid through outlet 150, when trigger 110 is actuated. Fluid components enter spray gun 100 through inlets 102 and 104 (shown in FIG. 1B). For example, component A may enter through inlet 102, and component B may enter through inlet 104.
FIG. 1C illustrates an exploded view of a plural component gun 100 illustrating a position of mixer 120 within spray gun 100. Mixer 120 received incoming components A and B from inlets 102, 104, respectively.
FIG. 2 illustrates a diagrammatic view of a fluid being applied to a surface. Using Bernoulli's principle and momentum conservation, the normal force exerted on the wall and flow rates can be derived using equations 1-3 presented below.
Fn=pAV2 sin θ  (1)
Q 1=1/2Q(1+cos θ)  (2)
Q 2=1/2Q(1−cos θ)  (3)
In Equations 1-3, Fn is normal force 230, volumetric flow rates Q, Q1, and Q2 correspond, respectively, to flow rates 212, 232, and 234. A is the area of the nozzle, V is the velocity at the nozzle outlet, and θ is angle 222 of inclined wall 220, or the impingement angle.
Using Equation 1 it is determined that normal force 230 is maximum when the impingement angle 222 is 90°. Impinging the jet at an angle can decrease the normal force acting on the wall, which in turn, decreases the force. Flow rates 232 and 234 are also dependent on angle 222. In a scenario where angle 222 is not equal to 90°, the fluid has a higher tendency to move in a first direction as opposed to a second direction, for example, flow rate 232 is greater than flow rate 234.
As illustrated using Equations 1-3, in a first case scenario, a 90° impingement angle for an incoming component A, with respect to the inlet for component B may result in a higher back pressure, which may distribute the flow equally on both sides of a mixer. Such an equal distribution can present a disadvantage as there is only one outlet for most mixer designs. Fluid particles are diverted opposite in direction to the outlet, which restrict flow coming into the mixer. In turn, this requires more pressure to reverse the flow back towards the outlet. Since the mix chamber walls are curved, the fluid particles may have a tendency to move axially without bouncing back toward the inlet, as compared to a vertical wall.
In a second scenario, the fluid particles from liquid components A and B come to a complete rest when impinging on each other in the vicinity of their intersection within the mixer. The fluid particles may then have to be accelerated to gain axial velocity along the mixer, which affects the pressure required. Having a higher offset between inlets would decrease the impingement of the fluid components on each other, such that the pressure is solely through impingement off the chamber wall. However, having the flows of liquid components A and B impinging at each other does ensure efficient mixing.
Aside from the first and second case scenarios presented above, when the pressures at the orifices are varied by a higher amount, liquid from one inlet (for example, component A inlet) is at a higher risk of flowing into the opposite inlet (for example, component B inlet), instead of exiting, through the outlet. Such a scenario creates a crossover event, where the liquid components react and cure internally within the spray gun. In many cases, a spray gun that experienced a crossover event is no longer usable. It is desired, therefore, to improve efficiency without increasing the risk of crossover. At least some of the embodiments described herein achieve such improvements.
FIGS. 3A and 3B illustrate a known mixer design. For example, FIG. 3A illustrates a mixer available from Polyurethane Machinery Corporation, headquartered in Lakewood, N.J. (hereinafter referred to as “the PMC chamber”). The PMC chamber illustrated in FIG. 3A is a standard 00 mix chamber and 00 tip configured to combine liquid components A and B in mixer 300 using two inlet apertures 310 and 320 arranged to have an offset of 0.010 inches from their respective centerlines (as illustrated in FIG. 3A). A portion of liquid component A impinges on the wall of mixer 300 while the rest impinges on liquid component B. Liquid component B behaves similarly. FIG. 3B illustrates a diagrammatic cross sectional view 350 of mixer 300, illustrating the overlap 330 between caused by offset centerlines between inlets 310 and 320.
Several different design requirements are important to consider for a mixer. In addition to reducing crossover events, it is also desired to maintain or improve efficiency of fluid mixing within the mixer. Additionally, a functional spray pattern must be maintained by the spray gun during operation. Ideally, the mixer will also be compatible with existing plural component spray gun technology, with minimal or no retrofitting. It is also desired to maintain or increase the flow rate of fluid through the mixer. At least some embodiments herein increase the robustness of current mixer designs and make the designs more resistant to crossover, which can be caused by pressure imbalances between the two fluid entering the mixer. At least some embodiments described herein change the angle of one or both fluid component inlets, with respect to the mixer from directly perpendicular to the side walls of the mixer to an angle towards the outlet. In one embodiment, the angle is about 10°. Embodiments described herein may also increase the separation between the mixer inlets of the two fluid components. These changes can reduce back pressure on the inlet orifices, reduce jetting of the fluids into the opposite side orifice, and facilitate proper mixing of the chemicals within the mixer under all potential pressure differential conditions.
FIGS. 4A-4H illustrate a comparison between a mixer in accordance with an embodiment of the present invention, and the mixer of FIGS. 3A and 3B. Mixer 400, illustrated in FIG. 4A, includes a mixer body that receives a first fluid inlet 410, and a second fluid inlet 420. As illustrated, fluid component inlets 410 and 420 are each angled at an orifice angle 412 and 422, respectively. In one embodiment, orifice angles 412 and 422 are about 10°. However, embodiments can be practiced with other angles, such as 5° to 20°. Additionally, as illustrated, the positioning of inlets 410 and 420 differs with respect to previous designs.
One advantage of an angled orifice is that it results in a lager axial (i.e. in the direction of the outlet) component of the fluid velocity when the two fluids components enter mixing chamber 400 through inlets 410 and 420. When the two fluids enter the mixing chamber on offset planes, voracity, or fluid rotation, is introduced, which improves the ability of the two fluids to mix and react. Angling orifices 410, 420 toward the outlet means that, as the fluid rotates in mixing chamber 400, there is less of an opportunity for it to circulate over to the opposing orifice and create a small recirculation zone that could be a trigger point for crossover in the event of a pressure loss on one side.
Orifice location is an important consideration for a crossover resistant design, in that inlet orifices 410, 420 should be offset from the centerline of the mixing chamber. In the design of FIGS. 3A and 3B, each orifice is offset by 0.010 inches from the mix chamber center line, resulting in a total offset distance of 0.020 inches between the entry plane of the inlets. Since the inlet diameter of mixer 300 is 0.032 inches, each orifice can see a small section of the other orifice, which results in fluid jetting from one side to the other, as well as recirculation in the inlet region of each orifice. As illustrated in FIG. 4A, in one embodiment, the offset of inlet orifices 410, 420 is increased to 0.040 inches from the center line, or 0.080 inches total offset, and the inner diameter of mixer 400 is increased to allow for greater offset.
FIG. 4B is a computational fluid flow pressure diagram illustrating pressure contours experienced along a surface of mixer 400, in fluid flow direction 430. The pressure contours of FIG. 4B were obtained using water as a medium flowing through inlets 410 and 420. The flow rates on both inlets was kept constant at 0.6 gallons/minute (GPM). FIG. 4C shows a similar pressure contour using mixer 300, shown in FIGS. 3A and 3B. As illustrated in the comparison between FIGS. 4B and 4C, the pressure drop experienced using mixer 400 is lower than that using mixer 300, with the same maximum velocity experienced at 160 meters/second.
FIG. 4D illustrates velocity for mixer 300. As expected, almost zero velocity is experienced at the intersection of fluid jets 415 and 425. Instead, as one end of mixer 402 is blocked, fluid particles are directed away from the outlet and are bounced back. The force from these particles, combined with the inlet fluid pressure impinging on the circular wall, creates a whirling motion, as illustrated in FIG. 4E. In contrast, when liquid components A and B are inserted into a circular space tangentially, as illustrated in FIGS. 4F and 4G, they create an overall rotational motion. The swirling motion dissipates as the fluid flows along the length of mix chamber 400. This behavior is caused by a lower pressure region along axis 430. Fluid particles near the wall move inward into the low pressure region. The rotational motion is converted to axial motion along the length of mix chamber 400 as illustrated in FIG. 4F FIG. 4G plots the vorticity contour for mixer 400, quantifying the decrease in rotational motion along length 430 of mixer 400.
Additional simulations were also conducted using polymeric fluids. In one example, A-isocyanate and B-polyol were used. The two components entered mixers 300 and 400 at a temperature greater than room temperature. The dynamic viscosity was consequently measured using a rotary viscometer. The dynamic viscosity values were found to be A—0.045 Pa·s and B—0.145 Pa·s when A dispersed at 120±3° F. and B at 130°±30° F. CFD simulations quantified the differential pressure between the inlets. Using mixer 400, a pressure differential of 950 PSI was observed, while mixer 300 only reached a differential of 575 PSI. The larger pressure differential allows for mixer 400 to avoid crossover due to user error and/or pump malfunction. Flow rates were also calculated through the simulations with set pressures at the inlets. Mixer 400 experienced 0.147 pounds/second while mixer 300 experienced 0.108 pounds/second.
Experimental testing was also conducted between mixers 300 and 400. At a set pump pressure, gun pressures were compared for each design, using different fluids. For liquid component B, the gun pressure for mixer 400 was 260 PSI greater than that of mixer 300. For liquid component A, the gun pressure was 200 PSI. As illustrated, mixer 400 has a lower back pressure when compared to mixer 300. The lower back pressure allows for a higher flow rate a set pump pressure. This validated the simulated, higher flow rate obtained using the CFD analysis discussed above.
Tests were also conducted to intentionally cause crossover between liquid components for both mixers 300 and 400. The results are illustrated in FIG. 4H as pressure differential values with the spray gun between components A and B for different B to A ratios. Mixer 400 was able to achieve a pressure differential of 841 PSI, while mixer 300 (illustrated in FIGS. 4A-4H as mixer 402) maxed out at 384 PSI.
Additionally, densities of foam sprayed using mixers 300 and 400 were compared, and presented below as Table 1. Foam was sprayed with a 2000 PSI set point, with component A delivered at 120° F. and component B delivered at 130° F. It is noted that the two designs were tested for double pass samples, instead of a single pass with a specification of 46.45 kg/m3. The obtained density values are similar using mixer 400, indicative of similar mixing capabilities.
TABLE 1
Chamber Core Weight Core Volume Core Density
design (gms) (mL) (kg/m3)
Mixer 300 6.35 110 57.82
Mixer 400 6.07 110 55.34
The CFD analysis of mixer 300 resulted in crossover at a 560 PSI differential. When testing mixer 400, crossover did not occur until a differential 950 PSI. Therefore, the chance of crossover was reduced by 70%. In a lab setting, crossover could not be induced using mixer 400.
The CFD analysis for the volume fraction demonstrated that mixing within chambers 300 and 400 are similar, with mixer 400 showing slightly improved mixing between components.
The spray pattern and spray atomization has improved when compared to mixer 300 for at least some embodiments. The spray pattern has widened in relation to that obtained using mixer 300. Additionally, as illustrated when comparing FIGS. 3A and 4A, mixer 400 is configured to be installed within similar spray gun configurations.
An additional benefit of mixer 400 is the increased mass flow rate achieved. Mixer 400 was tested using the same inlet size and spray nozzle. CFD results showed that the new design out-performed the current design by 28% with regard to mass flow rate. Higher flow rates allow operators to complete jobs faster, saving operators time and money on each job, and allowing operators to complete more jobs with the same equipment. Mixer 400, and similar embodiments discussed herein, can accomplish this while, maintaining foam density standards and quality.
FIGS. 5A-5F illustrate diagrammatic views of a mixer in accordance with an embodiment of the present invention. Mixer 500 is configured to be used in a plural component spray gun. FIG. 5D illustrates a view taken along the cross-section of line A-A, illustrated in FIG. 5A. FIG. 5E illustrates a cross-section of the spray gun taken along line B-B, shown in FIG. 5B. FIG. 5F illustrates a cross-sectional view of the mixer 500 taken along section C-C, shown in FIG. 5C. Mixer 500 is configured to receive two components at inlets on opposing sides of the mixer, as illustrated in FIGS. 5E and 5F. Inlets comprise an offset distance 510, with an orifice angle 512. In one embodiment, as illustrated by mixer 500, both component A and B experience the same offset angle 512 and inlet offset distance 510. However, other embodiments may be constructed differently, for example with the A and B inlets having different offset angles and or different inlet offsets. Mixer 500 has a chamber diameter of 502, of about 0.113 inches, which may allow for a higher volumetric flow rate when compared to previous designs.
FIGS. 6A-6C illustrate a mixer within a removable spray tip in accordance with an embodiment of the present invention. As illustrated in FIG. 1C, in current designs, a mixer is typically located within a spray gun. In the event crossover occurs, the spray gun must be completely disassembled in order to remove the mixer and address the damage from the crossover event. Additionally, in the event the spray gun is to be used for a different operation, which can require a different mixer configuration, the spray gun must be disassembled and reassembled with the desired mixer configuration between uses. It is desired for a mixer to be more easily removed and replaced from a spray gun design. One embodiment that achieves these goals is illustrated in FIGS. 6A-6C. Spray tip 600 is configured to be inserted within a spray gun, such as spray gun 100, such that fluid flows through the spray tip prior to exiting outlet 150.
FIG. 6B illustrates a cross-sectional view of spray tip 600 taken along line A-A illustrated in FIG. 6A. In one embodiment, the mixer is incorporated into spray tip 600, such that a first liquid component enters through inlet 602 at an inlet offset (not shown), and offset angle 612, while a second component enters through inlet 604, at an inlet offset (not shown) and offset angle 614. The offsets for inlets 602 and 604 may be the same or different. Angles 612 and 614 may be the same or different. In one embodiment, the inlet offset is 0.010 inches, and inlet angles 612 and 614 are each 20° with respect to a centerline of the mixer. However, the offset angle 612 and/or 614, may have a magnitude greater than 20°, for example 21°, 22°, 23°, 24°, 25°, 26°, 27°, or 28°. Additionally, while the inlet offset for 602 and 604 has been described as 0.010, it could also be smaller, for example 0.005 inches, or 0.006 inches, or 0.007 inches, or 0.008 inches, or 0.009 inches. FIG. 6C illustrates volumetric flow through spray tip 600 along flow path 630 to an outlet. As illustrated, complete mixing is achieved between components A and B, along mixer 630 with minimal risk of crossover.
FIGS. 7A-7C illustrate alternative mixer configurations in accordance with some embodiments of the present invention. In FIG. 7A, a mixer 700 comprises an inlet 702 and an inlet 704 configured to allow components to enter a mix chamber 700 and exit through outlet 706. FIG. 7B illustrates an alternative mix chamber design with mix chamber design 710 with inlets 712 and 714 and outlet 716. Additionally, FIG. 7C illustrates a mix chamber 720 with as first inlet 722, a second inlet 724, and an outlet 726.
Although the present invention has been described with reference to preferred embodiments, workers skilled in the art will recognize that changes may be made in form and detail without departing from the spirit and scope of the invention.

Claims (19)

What is claimed is:
1. A mixer for a plural component spray gun, the mixer comprising:
a mixer body comprising a mixing chamber having a single outlet and a centerline extending along a length of the mixing chamber;
a first fluid component inlet coupled to a first fluid conduit, the first fluid component inlet configured to introduce a first fluid component into the mixing chamber along a first axis of the first fluid component inlet; and
a second fluid component inlet coupled to a second fluid conduit, the second fluid component inlet configured to introduce a second fluid component into the mixing chamber along a second axis of the second fluid component inlet;
wherein
the first and second fluid component inlets arc spaced apart and disposed on opposite lateral sides of the mixer body, and the first and second axes are angled relative to a plane perpendicular to the centerline and toward the single outlet,
the first and second fluid component inlets are vertically offset from each other with respect to the centerline of the mixing chamber, and
the first and second fluid comnonent inlets are positioned such that there is no crossover of the first and second inlets at a pressure differential between 560 pounds per square inch (PSI) and 950 pounds per square inch (PSI).
2. The mixer of claim 1 wherein the mixer body comprises a removable spray tip, wherein the mixing chamber is entirely disposed within the removable spray tip such that the entire mixing chamber is removable with the spray tip.
3. The mixer of claim 1, wherein
the centerline comprises a longitudinal axis of the mixing chamber,
the single outlet is disposed along the longitudinal axis,
the first fluid component inlet is at a first angle with respect to the longitudinal axis of the mixing chamber, and
the second fluid component inlet is at a second angle with respect to the centerline of the mixing chamber.
4. The mixer of claim 3, wherein a first magnitude of the first angle is substantially the same as a second magnitude of the second angle.
5. The mixer of claim 4, wherein the first and second angles are substantially mirror images of each other with respect to the centerline of the mixing chamber.
6. The mixer of claim 3, wherein a magnitude of the first angle is different from a magnitude of the second angle.
7. The mixer of claim 3, wherein one of the first and second angles is approximately 10° from 90° with respect to the centerline of the mixing chamber.
8. The mixer of claim 3, wherein one of the first and second angles is approximately 20° from 90° with respect to the centerline of the mixing chamber.
9. The mixer of claim 3, wherein one of the first and second angles is in a range of approximately 10° to approximately 28° from 90° with respect to the centerline of the mixing chamber.
10. The mixer of claim 1, wherein the first inlet has a first vertical offset from the centerline of the mixing chamber, and the second inlet has a second vertical offset from the centerline of the mixing chamber.
11. The mixer of claim 10, wherein one of the first and second vertical offsets is greater than 0.01 inches from the centerline of the mixing chamber.
12. The mixer of claim 10, wherein one of the first and second vertical offsets is at least 0.04 inches from the centerline of the mixing chamber.
13. A mixer for a plural component spray gun, the mixer comprising:
a mixer body comprising a mixing chamber having a single outlet a centerline extending along a length of the mixing chamber;
a first fluid component inlet coupled to a first fluid conduit, the first fluid component inlet configured to introduce a first fluid component into the mixing chamber along a first axis of the first fluid component inlet; and
a second fluid component inlet coupled to a second fluid conduit, the second fluid component inlet configured to introduce a second fluid component into the mixing chamber along a second axis of the second fluid component inlet,
wherein
the first and second fluid component inlets are spaced apart and disposed on opposite lateral sides of the mixer body, and the first and second axes are angled relative to a plane perpendicular to the centerline and toward the single outlet,
the first and second fluid component inlets are vertically offset from each other with resect to the centerline of the mixing chamber, wherein the mixing chamber has a diameter greater than 0.112 inches, and wherein one of the first and second fluid component inlets has a diameter of 0.032 inches.
14. A plural component spray gun with a mixing unit, the spray gun comprising:
a spray tip configured to disperse a fluid mixture;
a first component source configured to provide a first component, to a mixing chamber within the mixing unit, at a first process temperature;
a second component source configured to provide a second component, to the mixing chamber within the mixing unit, at a second process temperature; and
the mixing chamber comprising:
a single outlet;
a centerline extending along a center axis of a body of the mixing chamber;
a first inlet configured to deliver the first component from the first component source to the mixing chamber along a first axis of the first inlet:
a second inlet configured to deliver the second component from the second component source to the mixing chamber along a second axis of the second inlet; and
wherein the first and second inlets are spaced apart and disposed on opposite lateral sides of the mixer body, and the first and second axes are angled relative to a plane perpendicular to the centerline and toward the single outlet, and
wherein the first and second inlets are positioned with respect to the centerline such that
the first and second inlets are each vertically offset from the centerline at a distance greater than their respective diameters and a diameter of the mixing chamber is greater than the combined diameters of the first and second inlets, and
there is no crossover of the first and second inlets at a pressure differential between 560 pounds per square inch (PSI) and 950 pounds per square inch (PSI).
15. The plural component spray gun of claim 14, wherein the angle is in a range of approximately 5° to approximately 10° from 90° with respect to the centerline.
16. The plural component spray gun of claim 14, wherein the angle is in a range of approximately 100 to approximately 200 from 900 with respect to the centerline.
17. The plural component spray gun of claim 14, wherein the angle is in a range of approximately 50 to approximately 250 from 90 with respect to the centerline.
18. The plural component spray gun of claim 14, wherein the spray tip is removably coupled to the spray gun and the mixing chamber is entirely disposed within the removable spray tip of the plural component spray gun such that the first and second components are mixed entirely within the spray tip.
19. The plural component spray gun of claim 14, wherein the mixing chamber is incorporated into a gun block of the plural component spray gun.
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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US12257594B2 (en) 2018-10-26 2025-03-25 Graco Minnesota Inc. Mix chamber for a plural component sprayer

Families Citing this family (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US11213840B2 (en) * 2017-05-01 2022-01-04 Wagner Spray Tech Corporation Mixer design for a plural component system
US11532851B2 (en) * 2019-11-08 2022-12-20 Enevate Corporation Si-anode-based semi-solid cells with solid separators
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US12427488B2 (en) 2021-07-28 2025-09-30 Philip Zylstra Multi-component fluid mixing device
WO2024065016A1 (en) * 2022-09-30 2024-04-04 Oliveira Andre Schuch Cold polyurea and polyurethane applicator device with a purge function, an air cap and a fan jet
CN116984155B (en) * 2023-09-26 2024-05-07 河南纾宸环保科技有限公司 Paint mixer for spraying machine
CN116984156B (en) * 2023-09-26 2024-05-10 河南纾宸环保科技有限公司 Two-component solvent-free coating film spraying equipment and spraying method thereof

Citations (34)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
AT43812B (en) 1909-03-29 1910-08-25 Clemens Graaff Spray nozzle for painting machines and the like.
US2890836A (en) * 1956-02-01 1959-06-16 Gusmer Inc A Apparatus for applying a mixture of a plurality of liquids
US3263928A (en) * 1964-11-19 1966-08-02 Frederick E Gusmer Apparatus for ejecting a mixture of liquids
US3437273A (en) * 1967-06-29 1969-04-08 Gray Co Inc Spray gun
US3876145A (en) * 1974-01-23 1975-04-08 Gusmer Corp Apparatus for ejecting a mixture of a plurality of liquids
US3917756A (en) * 1974-06-11 1975-11-04 Du Pont Apparatus for mixing gas and liquid
US4453670A (en) * 1982-09-13 1984-06-12 Binks Manufacturing Company Plural component flushless spray gun
US4471887A (en) * 1982-04-26 1984-09-18 Component Management Corp. Dispensing device
US4550863A (en) * 1983-06-27 1985-11-05 Fomo Products, Inc. Foam gun for mixing and dispensing two reactants
US4708292A (en) * 1985-06-05 1987-11-24 Olin Corporation Foam dispensing gun with improved mixing chamber
RU2009710C1 (en) * 1991-07-26 1994-03-30 Восточный научно-исследовательский углехимический институт Apparatus for foaming bituminous binder
US5299740A (en) * 1992-03-17 1994-04-05 Binks Manufacturing Company Plural component airless spray gun with mechanical purge
JPH10315226A (en) 1997-05-20 1998-12-02 Mitsui Chem Inc Mixing module for spray gun with improved two-liquid mixing properties
US6328229B1 (en) * 1998-12-18 2001-12-11 Cohesion Technologies, Inc. Low volume mixing spray head for mixing and dispensing of two reactive fluid components
US20020113146A1 (en) * 2001-02-16 2002-08-22 Oswald Scherer Spray gun
US20040124268A1 (en) * 2002-12-30 2004-07-01 Keith Frazier Spray gun with internal mixing structure
US20050194471A1 (en) * 2004-03-03 2005-09-08 Anderson Richard D. Air purge gun flat pattern spray
JP2006511343A (en) 2002-10-22 2006-04-06 グラコ ミネソタ インコーポレーテッド Multi-component spray gun for rapid solidification materials
US20060109738A1 (en) * 2003-05-05 2006-05-25 Ekato Process Technologies Gmbh Dispersing device
US20080257979A1 (en) * 2007-04-23 2008-10-23 Crawford Robert G Plural component purging system
US7527172B2 (en) * 2004-11-15 2009-05-05 Graco Minnesota Inc. Plural component mixing and dispensing apparatus
US7552847B2 (en) * 2003-05-09 2009-06-30 Intellipack Dispenser mixing module and method of assembling and using same
US7559440B2 (en) * 2004-09-07 2009-07-14 Clayton Corporation Anti-crossover dispensing applicator
US7651035B2 (en) * 2004-04-23 2010-01-26 Airspray N.V. Dispensing assembly
US20100308134A1 (en) * 2009-06-03 2010-12-09 Michael Bunnell Automatic Paint Spray Gun For Two-Component Systems
US20110011950A1 (en) * 2009-07-14 2011-01-20 Illinois Tool Works Inc. Internal mixing spray gun
KR101200952B1 (en) 2012-05-25 2012-11-13 한국건설생활환경시험연구원 Spray gun for two component paint
US20130015262A1 (en) * 2011-07-12 2013-01-17 Monchamp Ryan Winston Solvent-free plural component spraying system and method
CN203076149U (en) 2012-12-26 2013-07-24 重庆长江涂装设备有限责任公司 Two-component glue gun
US8931715B2 (en) * 2013-02-11 2015-01-13 John P. Courier Airless plural component spray gun
US9038929B1 (en) * 2011-06-17 2015-05-26 Pmc, Inc. Air spray gun with pattern control tip
CN105689169A (en) 2016-04-15 2016-06-22 东北林业大学 Mixing chamber assembly of polyurea spray gun
US20180297045A1 (en) * 2017-04-14 2018-10-18 Thomas R. ELETTO Plural component machine, hose and spray gun system
US20180353982A1 (en) * 2017-05-01 2018-12-13 Wagner Spray Tech Corporation Mixer design for a plural component system

Patent Citations (35)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
AT43812B (en) 1909-03-29 1910-08-25 Clemens Graaff Spray nozzle for painting machines and the like.
US2890836A (en) * 1956-02-01 1959-06-16 Gusmer Inc A Apparatus for applying a mixture of a plurality of liquids
US3263928A (en) * 1964-11-19 1966-08-02 Frederick E Gusmer Apparatus for ejecting a mixture of liquids
US3437273A (en) * 1967-06-29 1969-04-08 Gray Co Inc Spray gun
US3876145A (en) * 1974-01-23 1975-04-08 Gusmer Corp Apparatus for ejecting a mixture of a plurality of liquids
US3917756A (en) * 1974-06-11 1975-11-04 Du Pont Apparatus for mixing gas and liquid
US4471887A (en) * 1982-04-26 1984-09-18 Component Management Corp. Dispensing device
US4453670A (en) * 1982-09-13 1984-06-12 Binks Manufacturing Company Plural component flushless spray gun
US4550863A (en) * 1983-06-27 1985-11-05 Fomo Products, Inc. Foam gun for mixing and dispensing two reactants
US4708292A (en) * 1985-06-05 1987-11-24 Olin Corporation Foam dispensing gun with improved mixing chamber
RU2009710C1 (en) * 1991-07-26 1994-03-30 Восточный научно-исследовательский углехимический институт Apparatus for foaming bituminous binder
US5299740A (en) * 1992-03-17 1994-04-05 Binks Manufacturing Company Plural component airless spray gun with mechanical purge
JPH10315226A (en) 1997-05-20 1998-12-02 Mitsui Chem Inc Mixing module for spray gun with improved two-liquid mixing properties
US6328229B1 (en) * 1998-12-18 2001-12-11 Cohesion Technologies, Inc. Low volume mixing spray head for mixing and dispensing of two reactive fluid components
US20020113146A1 (en) * 2001-02-16 2002-08-22 Oswald Scherer Spray gun
JP2006511343A (en) 2002-10-22 2006-04-06 グラコ ミネソタ インコーポレーテッド Multi-component spray gun for rapid solidification materials
US20070034716A1 (en) * 2002-10-22 2007-02-15 Zittel Douglas P Plural component spray gun for fast setting materials
US20040124268A1 (en) * 2002-12-30 2004-07-01 Keith Frazier Spray gun with internal mixing structure
US20060109738A1 (en) * 2003-05-05 2006-05-25 Ekato Process Technologies Gmbh Dispersing device
US7552847B2 (en) * 2003-05-09 2009-06-30 Intellipack Dispenser mixing module and method of assembling and using same
US20050194471A1 (en) * 2004-03-03 2005-09-08 Anderson Richard D. Air purge gun flat pattern spray
US7651035B2 (en) * 2004-04-23 2010-01-26 Airspray N.V. Dispensing assembly
US7559440B2 (en) * 2004-09-07 2009-07-14 Clayton Corporation Anti-crossover dispensing applicator
US7527172B2 (en) * 2004-11-15 2009-05-05 Graco Minnesota Inc. Plural component mixing and dispensing apparatus
US20080257979A1 (en) * 2007-04-23 2008-10-23 Crawford Robert G Plural component purging system
US20100308134A1 (en) * 2009-06-03 2010-12-09 Michael Bunnell Automatic Paint Spray Gun For Two-Component Systems
US20110011950A1 (en) * 2009-07-14 2011-01-20 Illinois Tool Works Inc. Internal mixing spray gun
US9038929B1 (en) * 2011-06-17 2015-05-26 Pmc, Inc. Air spray gun with pattern control tip
US20130015262A1 (en) * 2011-07-12 2013-01-17 Monchamp Ryan Winston Solvent-free plural component spraying system and method
KR101200952B1 (en) 2012-05-25 2012-11-13 한국건설생활환경시험연구원 Spray gun for two component paint
CN203076149U (en) 2012-12-26 2013-07-24 重庆长江涂装设备有限责任公司 Two-component glue gun
US8931715B2 (en) * 2013-02-11 2015-01-13 John P. Courier Airless plural component spray gun
CN105689169A (en) 2016-04-15 2016-06-22 东北林业大学 Mixing chamber assembly of polyurea spray gun
US20180297045A1 (en) * 2017-04-14 2018-10-18 Thomas R. ELETTO Plural component machine, hose and spray gun system
US20180353982A1 (en) * 2017-05-01 2018-12-13 Wagner Spray Tech Corporation Mixer design for a plural component system

Non-Patent Citations (5)

* Cited by examiner, † Cited by third party
Title
Extended Search Report for European Patent Application No. 18794272.7 dated Dec. 16, 2020, 8 pages.
First Office Action for Chinese Patent Application No. 201880028989.3 dated Oct. 12, 2020, 17 pages with English Translation.
International Preliminary Report on Patentability for International Patent Application No. PCT/US2018/030130, dated: Nov. 14, 2019, date of filing: Apr. 30, 2018, 14 pages.
International Search Report and Written Opinion for International Patent Application No. PCT/US2018/030130 dated Aug. 14, 2018, 17 pages.
Second Office Action for Chinese Patent Application No. 201880028989.3 dated Jun. 17, 2021, 12 pages with English Translation.

Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US12257594B2 (en) 2018-10-26 2025-03-25 Graco Minnesota Inc. Mix chamber for a plural component sprayer
US12390820B2 (en) 2018-10-26 2025-08-19 Graco Minnesota Inc. Fluid cartridge for a plural component sprayer
USD1093551S1 (en) 2018-10-26 2025-09-16 Graco Minnesota Inc. Component mixing chamber

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CN110603107B (en) 2022-07-01
EP3618969A4 (en) 2021-01-13
EP3618969A1 (en) 2020-03-11
US20180353982A1 (en) 2018-12-13
CN110603107A (en) 2019-12-20

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